How to use from
vLLM
Install from pip and serve model
# Install vLLM from pip:
pip install vllm
# Start the vLLM server:
vllm serve "AdnanRiaz107/huggingfaceCodeBerta-finetuned-the-stack-bash"
# Call the server using curl (OpenAI-compatible API):
curl -X POST "http://localhost:8000/v1/completions" \
	-H "Content-Type: application/json" \
	--data '{
		"model": "AdnanRiaz107/huggingfaceCodeBerta-finetuned-the-stack-bash",
		"prompt": "Once upon a time,",
		"max_tokens": 512,
		"temperature": 0.5
	}'
Use Docker
docker model run hf.co/AdnanRiaz107/huggingfaceCodeBerta-finetuned-the-stack-bash
Quick Links

huggingfaceCodeBerta-finetuned-the-stack-bash

This model is a fine-tuned version of huggingface/CodeBERTa-small-v1 on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 2.4191

Model description

More information needed

Intended uses & limitations

More information needed

Training and evaluation data

More information needed

Training procedure

Training hyperparameters

The following hyperparameters were used during training:

  • learning_rate: 5e-05
  • train_batch_size: 1
  • eval_batch_size: 1
  • seed: 42
  • gradient_accumulation_steps: 4
  • total_train_batch_size: 4
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: cosine
  • lr_scheduler_warmup_steps: 100
  • training_steps: 10000

Training results

Training Loss Epoch Step Validation Loss
3.3233 0.05 500 3.4143
3.2135 0.1 1000 3.0184
3.1977 0.15 1500 2.8537
2.9303 0.2 2000 2.7396
3.1618 0.25 2500 2.6954
2.9122 0.3 3000 2.6338
2.8965 0.35 3500 2.5881
2.599 0.4 4000 2.5677
2.8213 0.45 4500 2.5247
2.516 0.5 5000 2.5118
2.8975 0.55 5500 2.4817
2.3503 0.6 6000 2.4803
2.1736 0.65 6500 2.4650
2.8777 0.7 7000 2.4394
2.5809 0.75 7500 2.4391
2.6986 0.8 8000 2.4199
3.2199 0.85 8500 2.4354
2.3214 0.9 9000 2.4174
0.7788 0.95 9500 2.4156
2.6361 1.0 10000 2.4191

Framework versions

  • Transformers 4.35.0
  • Pytorch 2.1.0+cu118
  • Datasets 2.14.6
  • Tokenizers 0.14.1
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